Suppressing Deformation of Silicon Anodes via Interfacial Synthesis for Fast‐Charging Lithium‐Ion Batteries

Author:

Lee Taeyong1,Kim Namhyung12,Lee Jiyun3,Lee Yoonkwang4,Sung Jaekyung5,Kim Hyeongjun1,Chae Sujong6,Cha Hyungyeon1,Son Yeonguk7,Kwak Sang Kyu3ORCID,Cho Jaephil1ORCID

Affiliation:

1. Department of Energy Engineering School of Energy and Chemical Engineering Ulsan National Institute of Science and Technology (UNIST) 44919 50, UNIST‐gil Ulsan Republic of Korea

2. Department of Materials System Engineering Pukyong National University Busan 48513 Republic of Korea

3. Department of Chemical and Biological Engineering Korea University 02841 145 Anam‐ro, Seongbuk‐gu Seoul Republic of Korea

4. Advanced Battery Development Team Hyundai Motor Company 18280 Hwaseong Republic of Korea

5. Department of Materials Engineering and Convergence Technology Gyeongsang National University 52828 501 Jinju‐daero Jinju Republic of Korea

6. Department of Industrial Chemistry Pukyong National University 48513 Busan Republic of Korea

7. Department of Chemical Engineering Changwon National University 51140 Changwon Republic of Korea

Abstract

AbstractSilicon anodes with high energy density are prone to mechanical deformation during cycling, including fracture, pulverization, and delamination from conductive materials, due to their large volume expansion and contraction. Although significant attention is paid to outer interface engineering such as surface coating and electrolyte design in order to maintain a steady solid electrolyte interphase (SEI), there are currently few strategies in place for stabilizing the inner interface between Si and conductive carbon host materials. In this work, it is reported that an interfacial SiC chemical bonding enhances the interaction between Si and carbon, which in turn suppresses nano‐sized void evolution and ensues Si delamination. Through the open‐edge structure of carbon nanotube (OCNT), it is demonstrated that graphitic edge planes enable to evoke of interfacial SiC specifically at the junction without overgrowth toward the bulk. As a result, an Si‐graphite composite consisting of interfacial SiC exhibits a sF cycling life (79.5% for 300 cycles at 3C charging), as well as lower overpotential under high current density up to 5C compared to paired LiNi0.6Co0.2Mn0.2O2 (NCM) cathode in pouch full‐cell tests. This study highlights the significance of inner interface engineering for developing high‐energy density Si‐based anodes toward fast charging and long‐term stability.

Funder

Ulsan National Institute of Science and Technology

National Research Foundation of Korea

Publisher

Wiley

Subject

General Materials Science,Renewable Energy, Sustainability and the Environment

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